TECHNICAL FIELD
[0001] This invention relates to a connector for use in electrically connecting a ROM or
IC card having a computer program stored therein to, for example, a computer equipped
apparatus body.
BACKGROUND ART
[0002] The ROM card has a packaged construction such that a printed circuit board in which
a ROM, with necessary connections, is provided has a contact provided on one side
edge thereof, the contact being exposed outside so that when the ROM card is inserted
into the connector, the printed circuit board of the ROM card is electrically connected
to a main printed circuit board of the apparatus body.
[0003] Fig. 8 shows a conventional connector. This connector is of such a construction that
as a ROM card 3 is inserted into a card insertion port 2 of a body 1, contacts 6 having
a curved shape are outwardly pushed away in manner as indicated by arrows, while being
held in friction contact with the ROM card 3, the contacts 6 being individually formed
as such in respective contactor portions 5 of conductor strips 4 accommodated in the
body 1, and that when the ROM card 3 is brought to a set position, the contacts 6
go into resilient contact with the contact of the ROM card 3.
[0004] Another type of conventional connector, which is shown in Fig. 9, is of such arrangement
that in a body 1 there is provided an expansion member 7 such that if it is rotated
a given angle (e.g., 90 degree) in one direction so that conductor strips 4 accommodated
in the body 1 are outwardly pushed away against the elastic force thereof, the contact
of the ROM card 3 does not go into friction contact with contacts 6 of the conductor
strips 5 when the ROM card 3 is inserted into a card insertion port 2; and after the
ROM card 3 is brought to its set position, by rotating the expansion member 7 over
said given angle in the reverse direction as shown by a virtual line in Fig. 9 the
contacts 6 are reset to their original position under the elastic force of respective
contactor portions 5 of the conductor strips 4, whereupon the contacts 6 go into resilient
contact with the contact of the ROM card 3.
[0005] In the Fig. 8 connector, however, if the contacts 6 of the conductor strips 4 are
allowed to go into firm resilient contact with the contact of the ROM card 3 to ensure
steady continuity, a larger insertion force is required when the ROM card 3 is inserted,
which hampers ease of insertion and, in addition, involves vigorous friction between
the contact of the ROM card 3 and the contacts 6 of the conductor strips 4 upon insertion
and withdrawal of the ROM card 3, so that the contact or contacts of either side or
both sides are likely to be worn out, their performance quality being thus unfavorably
affected. On the other hand, if the preload of contactor portions 5 of the conductor
strips 4 is reduced in an attempt to prevent such quality deterioration, it is likely
that the contact pressure between the respective contacts will be excessively reduced,
with the result of poor continuity. In the Fig. 8 connector, therefore, in order to
minimize possible quality deterioration of the contacts and to provide good continuity,
not only is it necessary to properly design the preload for the contactor portions
5, but also it is necessary to construct the conductor strips 4 of a costly high-performance
spring material and further to upgrade the deposit thickness of the contacts 6; all
this naturally leads to increased cost of manufacture. Another problem is that since
the ROM card 3 is placed outside the connector when not in use and since it is subject
to frequent insertion and withdrawal, it is much liable to contact quality deterioration
even if aforesaid measures are taken.
[0006] Whilst, in the Fig. 9 connector, if the contactor portions 5 of the conductor strips
4 are outwardly pushed away by the expansion member 7, the contact of the ROM card
3, upon each insertion or withdrawal, is not liable to rub against the contacts 6
of the conductor strips 4, and therefore it is possible to provide a larger preload
for the conductor strips 4 to ensure steady continuity; thus, such quality deterioration
due to contact wearing as above mentioned is inhibited. However, this connector requires,
as its indispensable components, the expansion member 7 and various parts for controlling
same, and this makes the arrangement complicated. Further, for each insertion or withdrawal
of the ROM card 3, the expansion member 7 has to be controlled, which is very troublesome.
[0007] The foregoing is also true in the case of an IC card being used instead of the ROM
card. De-A-3 442 397 discloses a chip card reader having a carriage carrying contact
springs for a chip and a slide for controlling the contacting.
[0008] Therefore, this invention is intended to overcome aforesaid difficulties and has
as its primary object the provision of a connector which is easy to control and is
less liable to deterioration of contact quality, by adoption of such arrangement that
respective contactor portions of conductor strips are designed to be displaced in
conjunction with the insertion or withdrawal of a ROM card.
DISCLOSURE OF THE INVENTION
[0009] In order to accomplish the foregoing object, the present invention provides a connector
comprising: a body having an insertion port for a contact-loaded card, a support
portion provided in the interior of the body for engagement with conductor strips
at their intermediate portions, a movable member provided in said interior which is
slidable back and forth along a path for insertion and withdrawal of the card, there
being disposed, between said movable member and said body, spring elements for constantly
biasing the movable member in the forward direction thereof and lock mechanisms for
positioning the movable member at a retracted position and at an advanced position,
said conductor strips each having a contactor portion in engagement with said support
portion and disposed along said insertion and withdrawal path, said contactor portion
having, remove from the free end thereof, a contact to be engaged by and disengaged
from the contact of the card,
said movable member having a stepped portion for abutment with the front end of
the card when the card is inserted through said insertion port, and a cam face which
raises cam followers at the free ends of said contactor portions against their elastic
force so as to enable the contacts of said contactor portions to move away from the
contact of the card when the movable member is at its advanced position and which
allows the free ends of said contactor portions to be reset under the elastic force
thereof so as to enable the contacts of said contactor portions to go in contact with
the contact of the card when the movable member is at its retracted position,
said lock mechanisms being alternately switchable to a locked state in which said
movable member is held at the retreated position and an unlocked state in which said
movable member is allowed to slide from the retracted position to the advanced position,
through repetition of push-in movement of the card brought in abutment with said stepped
portion.
[0010] Therefore, according to such arrangement, when the card which is inserted through
the insertion port of the body until its front end goes in abutment with the stepped
portion of the movable member is further pushed in, the movable member is caused to
retract to the retreated position against the biasing force of the spring elements,
whereupon the lock mechanisms are swithced over to locked state so that the movable
member is positioned at the retreated position. Through such a series of card insertion
movement, the contacts of the conductor strips which have been held away from the
contact of the card by the action of the cam face of the movable member are brought
in resilient contact with the contact of card only when the card is pushed in to the
set position.
[0011] When the card at the set position is pushed in, the lock mechanisms are switched
over to unlocked state, and the movable member is caused to slide to the advanced
position under the biasing force of the spring elements, whereupon the card is pushed
out by the movable member. During this push-out movement, the contacts of the conductor
strips are held away from the contact of the card by the action of the cam face.
[0012] According to the connector of the invention, therefore, the contacts of the conductor
strips can be moved away from and into contact with the contact of the card by insertion
and withdrawal of the card, without any particular control of the movable member.
Thus, no troublesome control is required and greater ease of use can be obtained.
Further, according to the invention, the contactor portions of the conductor strips
which are disposed along the path for card insertion and withdrawal are resiliently
displaced and reset at their front ends by the action of the cam face of the movable
member, and therefore said contactor portions can be resiliently displaced and reset
in smooth and reasonable manner. Therefore, the biasing force of the spring elements
for biasing the movable member in its forward direction can be of a small magnitude,
and thus ease of card insertion operation can be well assured.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Fig. 1 is an exploded view in perspective, partially cutaway, of a connector representing
one embodiment of the invention; Fig. 2 is a sectional view showing an internal aspect
of the connector; Fig. 3 is a section taken along line III - III in Fig. 2; Fig. 4
is a section taken along line IV - IV in Fig. 2; Figs. 5A - 5D are explanatory views
showing the operation of a slider; Figs. 6A - 6C are explanatory views showing the
operation of a lock mechanism; Fig. 7 is a section taken along line VII - VII in Fig.
6A; Fig. 8 is a sectional view showing one prior-art arrangement; and Fig. 9 is a
sectional view showing another prior-art arrangement.
BEST MODE FOR CARRYING OUT THE INVENTION
[0014] Fig. 1 is a partially cutaway exploded view in perspective showing one form of connector
embodying the invention, and Fig. 2 is a sectional view showing an internal aspect
of the connector. The connector shown is of a simplified design and incorporates a
special feature intended for preventing a plurality of conductor strips from going
into contact with one another.
[0015] A body 10 of the connector consists of a combination of an outer body 11 and an inner
body 12, both being of plastic molding. The inner body 12 has at its front end a support
portion 14 by which conductor strips 13 are engaged at their middle portion, and also
has a plurality of ribs 15 disposed in equi-spaced relation in the widthwise direction,
said ribs 15 being present over an area covering the upper and lower surfaces of a
protrudent portion 16 of the inner body 12 through the rear end thereof. At the underside
of the protrudent portion 16 of the inner body 12 there are formed a recess 17 which
is open at the under side and a recessed portion 18 which is open at the front. Further,
at a lower portion of the rear end of the inner body 12 there are formed vertical
grooves 19a, 19b of two different depths arranged at alternate intervals, and at sides
of the inner body 12 there are provided projections 20 and pawls 21.
[0016] The outer body 11, being of a hollow box shape, has at its front side an insertion
port 22 for insertion of a ROM card. The outer body 11 also has groove portions 23
into which the projections 20 of the inner body 12 are to be fitted, engagement grooves
24 for engagement with the pawls 21, and mounting grooves 26 for mounting lock mechanism
components 25 which will be described hereinafter.
[0017] Numeral 27 designates a movable member (hereinafter referred to as "slider"). At
its front end the slider 27 is formed with a stepped portion 28 for abutment with
the front end of the ROM card, the upper surface of the stepped portion is formed
as a cam face 29. As Fig. 2 illustrate in detail, the cam face 29 consists of a first
flat surface 30, a second flat surface 31, said two surfaces being different in level,
and a sloped guide surface 32 continued to the first flat surface 30. The first flat
surface 30 is longer than the second flat surface 31 in the longitudinal direction,
and it is partitioned by a multiplicity of ribs 30a. On each side of the movable member
27 there is provided a laterally extending spring seat 34 for seating a spring element
33 comprised of a coil spring, there being provided a support pin 35 on the spring
seat 34 integrally therewith. Shown by 36 is a flange for mounting the connector to
a computer-equipped apparatus body.
[0018] Each of the conductor strips 13 is comprised of an elongate metal leaf and includes
a contactor portion 37 located more adjacent to its front end than its portion for
engagement with the support portion 14, said contactor portion 37 being bent in a
check-mark pattern at its mid-portion to provide a contact 39. The front end of the
contactor portion 37 is crooked to form a follower portion 39 corresponding to the
cam face 29. As Fig. 1 shows, in their pre-assembly state, the conductor strips 13
are in such form that a multiplicity of them are connected to one another by tie bars
40. Each contactor portion 37 is bent at an angle close to a right angle to a lead
portion 41. The lead portion 41 is formed with triangular projections 42 at given
locations thereon.
[0019] The lock mechanisms 25 each consists of a pin 43, a mounting frame 44 fixed to a
bottom wall of the outer body 11 for rotatably supporting the pin at one end thereof,
a spring 45, and a guide groove 46 formed on the underside of the slider 27. The construction
of the guide groove 46 will be further described hereinafter.
[0020] The above mentioned outer body 11, inner body 12, slider 27, and the lock mechanisms
25 are assembled together as illustrated in Fig. 2. In their assembled condition,
the inner body 12 is fitted in the outer body 11, with the slider 27 fitted in the
recessed portion 18 of the inner body 12 so that it is back and forth slidable along
the insertion/withdrawal path (shown by numeral 51) for ROM card 50. The front end
of pin 43 of each lock mechanism is fitted in the guide groove 46, the pin 43 being
constantly urged inwardly of the guide groove 46 by the spring 45. As Fig. 4 shows,
the spring elements 33 each is interposed between the corresponding spring seat 34
of the slider 27 and the corresponding projection 20 of the inner body 12 so that
it is constantly urging the slider in the forward direction thereof, i.e., toward
the insertion port 22. The conductor strips 13 are individually fitted between corresponding
adjacent ribs 15, 15 of the inner body 12, their respective contact portions 37 being
bent so as for them to wrap around the protrudent portion 16 of the inner body 12
so that they extend along the insertion/withdrawal path 51 for ROM card 50. As shown
in detail in Fig. 3, the projections 42 of each conductor strip 13 bite into adjacent
ribs 15, thus serving to fix the lead portion 41 to the inner body 12 firmly and without
looseness.
[0021] The guide groove 46 of each lock mechanism 25 will be explained with reference to
Figs. 6A - 6C and 7. This guide groove 46 has a heart-shaped engagement portion 47,
V-shaped guide faces 48a, 48b, and stepped portions 49a, 49b, 49c, 49d formed at four
locations. By virtue of these stepped portions 49a, 49b, 49c, 49d, the pin 43 is guided
in the specific direction only, being inhibited from relative movement in the reverse
direction.
[0022] Nextly, the function of the above described connector will be explained.
[0023] As Fig. 5A shows, when ROM card 50 is not inserted, the slider 27 has been pushed
forward to the advanced position under the biasing force of the spring elements 33.
Accordingly, the follower portion 39 of each conductor strip 13 follows the first
flat portion 30 of the cam face 29 so that the contactor portion 37 is positioned
on the flat portion 30 level. When the contactor portion 37 is in such raised position,
the contact 38 of the conductor strip 13 is retreated to a location outside the insertion/withdrawal
path 51 for ROM card 50. Therefore, upon insertion of ROM card 50, there is no rubbing
contact between aforesaid contact 38 and the contact of the ROM card 50.
[0024] After the ROM card 50 is inserted into the insertion port 22 of the body 1 so that
its front end goes into abutment with the stepped portion 28 of the slider 27, if
the ROM card 50 is pushed further in as Figs. 5B and 2 illustrate, the slider 27 retreats
against the biasing force of the spring elements 33 to the retreated position, while
the follower portion 39, just before the slider 27 reaches its retreated position,
is displaced from the first flat portion 30 to a position on the second flat portion
31, whereupon the contact portion 37 makes entry into the insertion/withdrawal path
51. At this point of time, therefore, the contact 38 of the conductor 13 goes in resilient
contact with the contact of the ROM card 50. Thus, when the ROM card 50 pushes the
slider 27 to the retreated position, the contact 38 of the conductor strip 13 is rubbed
against the contact of the ROM card 50 while the ROM card 50 is pushed from a position
immediately prior to the set position and to the set position. In this case, the mutual
rubbing between the contacts serves for the purpose of the so-called self cleaning
of contacts; indeed, such rubbing is convenient from the standpoint of good contact
quality maintenance.
[0025] Meanwhile, through the above described series of ROM card insertion operation, the
guide groove 46 of each lock mechanism 25 is displaced from the Fig. 6A position to
the Fig. 6B position in relation to the pin 43, and the engagement portion 47 is brought
into engagement with the pin 43 under the biasing force of the spring element 33 so
that the lock mechanism is switched over to the lock state, the slider 27 being thus
positioned to the retreated position. The ROM card 50 is set to the set position.
[0026] When the ROM card 50 in the set position as in Fig. 5C is pushed in to further retreat
the slider 27, the guide groove 46 of each lock mechanism 25 is displaced further
rearward as Fig. 6C shows, so that the pin 43 is disengaged from the engagement portion
47, the lock mechanism being thus changed over to the unlocked state. Accordingly,
the slider 27 is caused to slide from the retreated position to the advanced position
under the biasing force of the spring element 33, and thus the ROM card 50 is pushed
outward as Fig. 5D shows. In the meantime, the guide groove 46 of the lock mechanism
25 is reset from the Fig. 6C position to the Fig. 6A position, and the slider 27 is
positioned to the advanced position. Following the slide movement of the slider 27,
the follower portion 39 of each conductor strip 13 is guided by the guide face 32
to get on the first flat portion 30 and the contactor portion 37 is pushed against
the elastic force thereof outwardly of the insertion/withdrawal path. During the course
of the ROM card 50 being pushed in at the set position and up to the follower portion
39 being raised to the first flat portion 30, the contact of the ROM card 50 is rubbed
by the contact of the conductor strips 13; but in the course of operation subsequent
to the time when the follower portion 39 is raised to the first flat portion 30, the
contact 38 is held away from the contact of the ROM card 50. It is to be noted in
this conjunction that the rubbing contact between the contacts at such initial stage
in which the ROM card 50 is pushed out as above mentioned serves for aforesaid self-cleaning
purposes; such rubbing is desirable from the standpoint of good contact quality maintenance.
[0027] In the above described connector, the displacement of the contact portions 37 which
takes place is conjunction with the slide movement of the slider 27 is effected as
a pivotal movement about the engagement position of the conductor strips 13 relative
to the support portion 14 of the inner body 12 or a position adjacent thereto. The
follower portion 39 of each conductor strip 13 is provided at a location which is
more remote from said pivotal position than the contact 38. Therefore, even if the
preload of the contactor portions 37 is increased in order to allow the contacts 38
to go into more forceful resilient contact with the contact of the ROM card 50, the
slide movement of the slider 27 can be effected with comparatively small force. From
this it is apparent that if the spring force (biasing force) of the spring elements
33 is decreased, it is still possible to cause the slider 27 to be pushed forward
steadily from the retreated position to the advanced position under said biasing force.
In this way, the force for insertion of ROM card 50 can be set to a minimum.
[0028] The foregoing description is equally applicable to the case where IC card is used
instead of ROM card 50.
[0029] As described above, even if greater preload is applied to the contactor portions
of the conductor strips, any contact wearing due to rubbing of contacts is less liekly
to occur, and thus the quality of contacts can be long-maintained in good condition.
Further, as compared with the conventional arrangement shown in Fig. 9, the invention
has the advantage that such troublesome procedure as previously required is eliminated,
it being thus possible to provide a connector which is easy to use and inexpensive
to manufacture. Another advantage is that even if contacts are caused to go in more
forceful resilient contact in order to ensure steady continuity, the force required
for insertion of a card can be of a minimum magnitude. Therefore, when the invention
is applied to a connector having a large number of contacts, ease of use can be greatly
enhanced, because the force required for card insertion can be relatively small for
the number of contacts involved.
INDUSTRIAL APPLICABILITY
[0030] As above stated, the connector according to the invention is advantageously applicable
for use in electrically connecting cards, such as ROM card and IC card, which are
subject to frequent insertion and withdrawal, to a main printed circuit board of an
electric apparatus.
1. A connector comprising:
a body (10) having an insertion port (22) for a contact-loaded card (50), a support
portion (14) provided in the interior of the body for engagement with conductor strips
(13) at their intermediate portions, a movable member (27) provided in said interior
which is slidable back and forth along a path (51) for insertion and withdrawal of
the card, there being disposed, between said movable member and said body, spring
elements (33) for constantly biasing the movable member in the forward direction thereof
and lock mechanisms (25) for positioning the movable member at a retracted position
and at an advanced position,
said conductor strips each having a contactor portion (37) in engagement with said
support portion and disposed along said insertion and withdrawal path, said contactor
portion having remote from the free end thereof a contact (38) to be engaged by and
disengaged from the contact of the card (50),
said movable member having a stepped portion (28) for abutment with the front end
of the card when the card is inserted through said insertion port, and a cam face
(29) which raises cam followers (39) at the free ends of said contactor portions (37)
against their elastic force so as to enable the contacts (38) of said contactor portions
to move away from the contact of the card when the movable member (27) is at its advanced
position and which allows the free ends of said contactor portions to be reset under
the elastic force thereof so as to enable the contacts of said contactor portions
to go in contact with the contact of the card when the movable member is at its retracted
position,
said lock mechanisms being alternately switchable to a locked state in which said
movable member is held at the retreated position and an unlocked state in which said
movable member is allowed to slide from the retracted position to the advanced position,
through repetition of push-in movement of the card brought in abutment with said stepped
portion (28).
2. A connector as set forth in claim 1 wherein the body consists of an outer body of
a hollow box shape having a card insertion port formed on the front wall thereof,
and an inner body having a support portion extending toward said card insertion port
of the outer body, said support portion being fitted in the outer body and fixed thereto.
3. A connector as set forth in claim 2 wherein the movable member is mounted in the outer
body by being fitted therein together with the support portion of the inner body.
4. A connector as set forth in claim 2 wherein the conductor strips provided in plurality,
each has its mid-portion disposed between adjacent ones of ribs formed on the support
portion at specified intervals in the widthwise direction thereof, said mid-portion
being in engagement with the corresponding ribs.
5. A connector as set forth in claim 4 wherein the plurality of the conductor strips,
each has its mid-portion placed from above between corresponding adjacent ones of
the ribs of the support portion and held in engagement therewith, the mid-portion
of the conductor strip being bent at its front end in U-shaped pattern along the front
end portion of the support portion so that the contactor portion of the conductor
which is to be brought into opposed relation with the movable member as required is
caused to extend toward the inner-side base portion of the support portion.
6. A connector as set forth in claim 5 wherein the contactor portion of each conductor
strip which extends toward the inner-side base portion of the support portion is adapted
to be positioned between ribs formed on the movable member.
7. A connector as set forth in claim 1 wherein each of the lock mechanisms comprises
a mounting frame fixed to the body, a pin rotatably supported in said mounting frame,
and a guide groove formed on the movable member at one side thereof and in which said
pin is inserted for being guided to a lock position and to an unlocked position.
1. Verbindungsstück, enthaltend:
einen Körper (10) mit einem Einsteckschlitz (22) für eine mit Kontakten versehene
Karte (50), einem Halterteil (14), das im Inneren des Körpers vorgesehen ist und mit
den Zwischenteilen der Leiterstreifen (13) im Eingriff ist, ein bewegliches Glied
(27), das in diesem Inneren vorgesehen ist und vor- und zurückgleitbar ist entlang
eines Wegs (51) zum Einschieben bzw. Herausziehen der Karte, wobei zwischen diesem
beweglichen Glied und dem Körper zwecks kontinuierlicher Vorspannung des beweglichen
Glieds in seiner Vorwärtsrichtung Federelemente (33), sowie ein Verriegelungsmechanismus
(25) zum Positionieren des beweglichen Teils in einer zurückgezogenen bzw. in einer
vorgeschobenen Stellung angeordnet sind,
wobei diese Leiterstreifen jeweils einen Kontaktteil (37) im Eingriff mit diesem Halteteil
aufweisen und entlang diesem Einschub- bzw. Ausziehweg angeordnet sind, wobei dieser
Kontaktteil im Abstand vom freien Ende derselben einen Kontakt (38) aufweist, der
vom Kontakt der Karte (50) erfaßt bzw. freigegeben wird,
dieses bewegliche Glied einen gestuften Teil (28) zur Anlage am Vorderende der Karte
aufweist, wenn die Karte in den Einschubschlitz eingesteckt wird, und eine Steuerfläche
(29), die Steuerstifte (39) an den freien Enden dieser Kontaktteile (37) gegen deren
elastische Kraft hochhebt, so daß sich die Kontakte (38) dieser Kontaktteile weg vom
Kontakt der Karte bewegen, wenn dieses bewegliche Glied (27) in seiner vorgeschobenen
Stellung steht, und die es zulassen, daß sich die freien Enden dieser Leiterteile
unter ihrer Federkraft zurückstellen, so daß die Kontakte dieser Kontaktteile in Berührung
mit dem Kontakt der Karte kommen, wenn das bewegliche Glied in seiner zurückgezogenen
Stellung steht,
dieser Verriegelungsmechanismus alternierend in einen Verriegelungszustand, in dem
dieses bewegliche Glied in der zurückgezogenen Stellung gehalten wird, und in einen
entriegelten Zustand, in dem dieses bewegliche Glied aus seiner zurückgezogenen Stellung
in die vorgeschobene Stellung gleiten kann, durch Wiederholen der Einschubbewegung
der Karte in Anlage an diesen gestuften Teil (28) übergeht.
2. Verbindungsstück gemäß Anspruch 1, bei dem der Körper aus einem äußeren Körper in
der Form einer hohlen Box mit einem Karteneinsteckschlitz in einer Wand und einem
inneren Körper mit einem Halteteil besteht, das sich in Richtung auf diesen Karteneinsteckschlitz
des äußeren Körpers zu erstreckt, wobei dieses Halteteil in den äußeren Körper eingesetzt
und daran befestigt wird.
3. Verbindungsstück gemäß Anspruch 2, bei dem das bewegliche Glied in den äußeren Körper
durch Einpassen zusammen mit dem Halteteil des inneren Körpers montiert wird.
4. Verbindungsstück gemäß Anspruch 2, bei dem die Leiterstreifen, die in Vielzahl vorgesehen
sind, jeweils mit ihrem Mittelteil zwischen nebeneinanderliegende, der Breite nach
mit festen Zwischenräumen ausgebildete Rippen im Halteteil eingesetzt sind, wobei
dieses Mittelteil in die entsprechenden Rippen eingreift.
5. Verbindungsstück gemäß Anspruch 4, bei dem eine Vielzahl von Leiterstreifen jeweils
mit dem Mittelteil von oben zwischen die entsprechenden nebeneinanderliegenden Rippen
des Halteteils eingesetzt und darin eingreifend gehalten werden, der Mittelteil des
Leiterstreifens am Vorderende entlang eines Vorderendteils des Halteteils U-förmig
gebogen ist, so daß der Leiterstreifenteil, der dem beweglichen Teil gegenüberlag,
sich so weit wie nötig in Richtung zur Innenseite des Grundteils des Halteteils erstreckt.
6. Verbindungsstück gemäß Anspruch 5, bei dem der Kontaktteil jedes Leiterstreifens,
der sich in Richtung auf die Innenseite des Grundteils des Halteteils zu erstreckt,
so angepaßt ist, daß er zwischen die auf dem beweglichen Teil ausgebildeten Rippen
eingesetzt werden kann.
7. Verbindungsstück gemäß Anspruch 1, bei dem jeder der Verriegelungsmechanismen einen
am Körper befestigten Einbaurahmen, einen drehbar in diesem Einbaurahmen gehalterten
Stift, und eine Führungsnut im beweglichen Glied an einer Seite desselben, in die
dieser Stift eingeschoben wird, um in eine Verriegelungsstellung bzw. Entriegelungsstellung
zu gleiten, aufweist.
1. Connecteur comprenant:
un corps (10) présentant un orifice d'insertion (22) pour une carte (50) équipée
de contact, une partie de support (14) montée à l'intérieur du corps, pour venir en
contact avec des bandes conductrices (13), au niveau de leurs parties intermédiaires,
un organe mobile (27) monté à l'intérieur dudit corps, qui est susceptible de coulisser
vers l'arrière et vers l'avant, le long d'un chemin (51), pour permettre l'insertion
et l'extraction de la carte, des éléments élastiques (33) étant disposés entre ledit
organe mobile et ledit corps, pour déplacer de manière constante l'organe mobile dans
sa direction avant, et des mécanismes de verrouillage (25) pour permettre le positionnement
de l'organe mobile dans une position rétractée et dans une position avancée,
lesdites bandes conductrices présentant chacune une partie de contacteur (37) en
contact avec ladite partie de support et disposée le long dudit chemin d'insertion
et d'extraction, ladite partie de contacteur présentant, à distance de son extrémité
libre, un contact (38) destiné à être mis en contact et hors contact par le contact
de la carte (50),
ledit organe mobile présentant une partie étagée (28) pour venir en butée avec
l'extrémité avant de la carte, lorsque la carte est insérée dans ledit orifice d'insertion,
et une face de came (29) qui élève des suiveurs de cames (39), au niveau des extrémités
libres desdites parties de contacteur (37), contre leur force élastique, de manière
à permettre aux contacts (38) desdites parties de contacteur de se déplacer en s'éloignant
du contact de la carte, lorsque l'organe mobile (27) se trouve dans sa position avancée,
et qui permet aux extrémités libres desdites parties de contacteur d'être remises
en place, sous l'effet de leur force élastique, de manière à permettre aux contacts
desdites parties de contacteur de venir en contact avec le contact de la carte, lorsque
l'organe mobile se trouve dans sa position rétractée,
lesdits mécanisme de verrouillage étant aptes à être commutés en alternance pour
venir dans un état verrouillé, dans lequel ledit organe mobile est maintenu dans la
position rétractée, et un état déverrouillé, dans lequel ledit organe mobile peut
coulisser de la position rétractée à la position avancée, grâce à la répétition du
mouvement d'insertion de la carte, mise en contact avec ladite partie étagée (28).
2. Connecteur selon la revendication 1, dans lequel le corps consiste en un corps extérieur
d'un boîtier creux présentant un orifice d'insertion de carte formé sur sa paroi avant,
et un corps intérieur présentant une partie de support s'étendant vers ledit orifice
d'insertion de carte du corps extérieur, ladite partie de support étant montée dans
le corps extérieur et fixée à ce dernier.
3. Connecteur selon la revendication 2, dans lequel l'organe mobile est monté dans le
corps extérieur, en y étant installé conjointement avec la partie de support du corps
intérieur.
4. Connecteur selon la revendication 2, dans lequel les bandes conductrices sont prévues
en une pluralité, chacune d'entre elles présentant sa partie intermédiaire disposée
entre des nervures adjacentes parmi des nervures formées sur la partie de support,
à des intervalles spécifiés dans le sens de sa largeur, ladite partie intermédiaire
étant en contact avec les nervures correspondantes.
5. Connecteur selon la revendication 4, dans lequel chaque bande conductrice de la pluralité
de bandes conductrices présente sa partie intermédiaire placée, par au-dessus, entre
des nervures adjacentes correspondantes parmi les nervures de la partie de support,
et maintenue en contact avec elles, la partie intermédiaire de la bande conductrice
étant coudée au niveau de son extrémité avant selon un motif en forme de U, le long
de la partie d'extrémité avant de la partie de support, de manière à provoquer l'extension
de la partie de contacteur du conducteur devant être placé en relation opposée avec
l'organe mobile, comme il est souhaité, vers la partie de base de côté intérieur de
la partie de support.
6. Connecteur selon la revendication 5, dans lequel la partie de contacteur de chaque
bande conductrice s'étendant vers la partie de base de côté intérieur de la partie
de support est adaptée pour être positionnée entre des nervures formées sur l'organe
mobile.
7. Connecteur selon la revendication 1, dans lequel chacun des mécanismes de verrouillage
comprend un cadre de montage fixé au corps, une broche supportée à rotation dans ledit
cadre de montage, et une rainure de guidage formée sur l'organe mobile, sur l'un de
ses côtés, et dans lequel ladite broche est insérée pour être guidée vers une position
verrouillée et vers une position déverrouillée.